Title of article
In situ FTIR characterization of the adsorption of CO and its reaction with NO on Pd-based FCC low NOx combustion promoters
Author/Authors
Oleg S. Alexeev، نويسنده , , Sundaram Krishnamoorthy، نويسنده , , Cody Jensen، نويسنده , , Michael S. Ziebarth، نويسنده , , George Yaluris، نويسنده , , Terry G. Roberie، نويسنده , , Michael D. Amiridis، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2007
Pages
10
From page
189
To page
198
Abstract
The adsorption of CO and its reaction with NO in the 400–600 °C temperature range on Cen+/Na+/γ-Al2O3 and Pdn+/Cen+/Na+/γ-Al2O3 type materials used commercially as FCC additives were monitored by FTIR spectroscopy. Exposure of both types of samples to CO leads to the formation of carboxylates and carbonates. The concentration of these species was higher in samples containing Pd, indicating that palladium catalyzes their formation. The Pdn+ cations initially present in these samples undergo partial reduction to form metallic Pd in the presence of CO even at room temperature. More complete reduction of Pd, along with some aggregation, was observed after exposure to CO at elevated temperatures. Exposure of both types of samples to NO/CO mixtures in the 400–600 °C temperature range leads to the formation of surface isocyanate species. Both Na+ and Cen+ promote the formation of such NCO species. However, surface isocyanate species were formed with substantially higher rates in the presence of palladium. The formation of the isocyanate species strongly correlates with changes observed in the νOH region, indicating that hydroxyls actively participate in the surface chemistry involved and are capable of protonating the NCO species. The isocyanates are also reactive towards O2 and NO yielding CO2 and N2. These results suggest that isocyanates are possibly involved as intermediates in the CO–NO reaction over the materials examined.
Keywords
FTIR , FCC additive , PALLADIUM , Isocyanates , Carbon monoxide adsorption , NOx reduction
Journal title
CATALYSIS TODAY
Serial Year
2007
Journal title
CATALYSIS TODAY
Record number
1236097
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